Upload
others
View
10
Download
0
Embed Size (px)
Citation preview
Introduction to MechanicsProjectiles
Launched Horizontally
Lana Sheridan
De Anza College
Feb 11, 2020
Last time
• relative motion
• relative motion examples
Overview
• one more relative motion problem
• motion in 2D with constant acceleration
• projectile motion
• projectiles launched horizontally
Relative Motion Practice
You are riding on a Jet Ski at an angle of 35◦ upstream on a riverflowing with a speed of 2.8 m/s. If your velocity relative to theground is 9.5 m/s at an angle of 20.0◦ upstream, what is thespeed of the Jet Ski relative to the water?
(Note: Angles are measured relative to the x axis, which pointsacross the river.)
Chapter 3: Vectors in Physics James S. Walker, Physics, 4th Edition
Copyright © 2010 Pearson Education, Inc. All rights reserved. This material is protected under all copyright laws as they currently exist. No portion of this material may be reproduced, in any form or by any means, without permission in writing from the publisher.
3 – 21
3. Find the direction of fw
vG
: fw, 1 1
fw,
2.25 m/stan tan 43 west of north
2.40 m/s
x
y
v
vθ − −
⎛ ⎞ ⎛ ⎞⎜ ⎟= = = °⎜ ⎟⎜ ⎟ ⎝ ⎠⎝ ⎠
4. Find the magnitude of
fwvG
: ( ) ( )2 22 2
fw fw, fw, 2.25 m/s 2.40 m/s 3.29 m/sx yv v v= + = − + =
Insight: If the person were to walk even faster with respect to the ferry, then fw
vG
would have to be shorter and point
more in the westerly direction.
55. Picture the Problem: The situation is similar to that depicted in the figure at
right, except the boat is supposed to be a jet ski.
Strategy: Place the x-axis perpendicular to the flow of the river, such that the
river is flowing in the negative y-direction. Let bw
=vG
jet ski’s velocity relative to
the water, bg=v
G jet ski’s velocity relative to the ground, and
wg=v
G water’s
velocity relative to the ground. Use equation 3-8 to find the vector bw
vG
, and then
determine its magnitude.
Solution: 1. Solve eq. 3-8 for bw
vG
: bg bw wg bw bg wg
= + ⇒ = −v v v v v vG G G G G G
2. Find the components of bg
vG
: ( ) ( )( ) ( )
bgˆ ˆ9.5 m/s cos 20.0 9.5 m/s sin 20.0
ˆ ˆ8.9 m/s 3.2 m/s
= ° + °
= +
v x y
x y
G
3. Subtract to find bw
vG
: ( ) ( ) ( )( ) ( )
bw bg wgˆ ˆ ˆ8.9 m/s 3.2 m/s 2.8 m/s
ˆ ˆ8.9 m/s 6.0 m/s
= − = + − −⎡ ⎤⎣ ⎦= +
v v v x y y
x y
G G G
4. Find the magnitude of
bwvG
: ( ) ( )2 2
bw8.9 m/s 6.0 m/s 11 m/sv = + =
Insight: Note that the 35° angle is extraneous information for this problem. If we work backwards to find the angle
from the components of bw
vG
we get ( )1tan 6.0 8.9 34θ −= = ° , not exactly 35° due to rounding errors.
56. Picture the Problem: The situation is depicted in the figure at right, except the
boat is supposed to be a jet ski.
Strategy: Place the x-axis perpendicular to the flow of the river, such that the
river is flowing in the negative y-direction. Let bw
=vG
jet ski’s velocity
relative to the water, bg=v
G jet ski’s velocity relative to the ground, and
wg=v
G water’s velocity relative to the ground. Set the y component of
bwvG
equal to the magnitude of wg
vG
so that they cancel, leaving only an x component of
bgvG
. Then determine the angle θ.
Solution: 1. (a) Set bw, wg,
0y yv v+ = and solve for θ:
( )bw, bw wg,
wg, 1 1
bw
sin
2.8 m/ssin sin 13
12 m/s
y y
y
v v v
vv
θ
θ − −
= = −
− − −⎛ ⎞⎛ ⎞= = = °⎜ ⎟⎜ ⎟
⎝ ⎠ ⎝ ⎠
2. (b) Increasing the jet ski’s speed relative to the water will increase bwv and therefore decrease the angle θ.
Insight: Airplanes must also make heading adjustments like the jet ski’s in order to fly in a certain direction when there
is a steady wind present.
Ans: 11 m/s
1Walker, “Physics”, ch 3, problem 55.
Relative Motion Practice
You are riding on a Jet Ski at an angle of 35◦ upstream on a riverflowing with a speed of 2.8 m/s. If your velocity relative to theground is 9.5 m/s at an angle of 20.0◦ upstream, what is thespeed of the Jet Ski relative to the water?
(Note: Angles are measured relative to the x axis, which pointsacross the river.)
Chapter 3: Vectors in Physics James S. Walker, Physics, 4th Edition
Copyright © 2010 Pearson Education, Inc. All rights reserved. This material is protected under all copyright laws as they currently exist. No portion of this material may be reproduced, in any form or by any means, without permission in writing from the publisher.
3 – 21
3. Find the direction of fw
vG
: fw, 1 1
fw,
2.25 m/stan tan 43 west of north
2.40 m/s
x
y
v
vθ − −
⎛ ⎞ ⎛ ⎞⎜ ⎟= = = °⎜ ⎟⎜ ⎟ ⎝ ⎠⎝ ⎠
4. Find the magnitude of
fwvG
: ( ) ( )2 22 2
fw fw, fw, 2.25 m/s 2.40 m/s 3.29 m/sx yv v v= + = − + =
Insight: If the person were to walk even faster with respect to the ferry, then fw
vG
would have to be shorter and point
more in the westerly direction.
55. Picture the Problem: The situation is similar to that depicted in the figure at
right, except the boat is supposed to be a jet ski.
Strategy: Place the x-axis perpendicular to the flow of the river, such that the
river is flowing in the negative y-direction. Let bw
=vG
jet ski’s velocity relative to
the water, bg=v
G jet ski’s velocity relative to the ground, and
wg=v
G water’s
velocity relative to the ground. Use equation 3-8 to find the vector bw
vG
, and then
determine its magnitude.
Solution: 1. Solve eq. 3-8 for bw
vG
: bg bw wg bw bg wg
= + ⇒ = −v v v v v vG G G G G G
2. Find the components of bg
vG
: ( ) ( )( ) ( )
bgˆ ˆ9.5 m/s cos 20.0 9.5 m/s sin 20.0
ˆ ˆ8.9 m/s 3.2 m/s
= ° + °
= +
v x y
x y
G
3. Subtract to find bw
vG
: ( ) ( ) ( )( ) ( )
bw bg wgˆ ˆ ˆ8.9 m/s 3.2 m/s 2.8 m/s
ˆ ˆ8.9 m/s 6.0 m/s
= − = + − −⎡ ⎤⎣ ⎦= +
v v v x y y
x y
G G G
4. Find the magnitude of
bwvG
: ( ) ( )2 2
bw8.9 m/s 6.0 m/s 11 m/sv = + =
Insight: Note that the 35° angle is extraneous information for this problem. If we work backwards to find the angle
from the components of bw
vG
we get ( )1tan 6.0 8.9 34θ −= = ° , not exactly 35° due to rounding errors.
56. Picture the Problem: The situation is depicted in the figure at right, except the
boat is supposed to be a jet ski.
Strategy: Place the x-axis perpendicular to the flow of the river, such that the
river is flowing in the negative y-direction. Let bw
=vG
jet ski’s velocity
relative to the water, bg=v
G jet ski’s velocity relative to the ground, and
wg=v
G water’s velocity relative to the ground. Set the y component of
bwvG
equal to the magnitude of wg
vG
so that they cancel, leaving only an x component of
bgvG
. Then determine the angle θ.
Solution: 1. (a) Set bw, wg,
0y yv v+ = and solve for θ:
( )bw, bw wg,
wg, 1 1
bw
sin
2.8 m/ssin sin 13
12 m/s
y y
y
v v v
vv
θ
θ − −
= = −
− − −⎛ ⎞⎛ ⎞= = = °⎜ ⎟⎜ ⎟
⎝ ⎠ ⎝ ⎠
2. (b) Increasing the jet ski’s speed relative to the water will increase bwv and therefore decrease the angle θ.
Insight: Airplanes must also make heading adjustments like the jet ski’s in order to fly in a certain direction when there
is a steady wind present.
Ans: 11 m/s1Walker, “Physics”, ch 3, problem 55.
Relative Motion Practice
For the same river, suppose the Jet Ski is moving at a speed of12 m/s relative to the water.
(a) At what angle must you point the Jet Ski if your velocityrelative to the ground is to be perpendicular to the shore of theriver?
(b) If you increase the speed of the Jet Ski relative to the water,does the angle in part (a) increase, decrease, or stay the same?Explain.
(Note: Angles are measured relative to the x axis, which pointsacross the river.)
Ans: (a) 13◦ ; (b) decrease
1Walker, “Physics”, ch 3, problem 56.
Relative Motion Practice
For the same river, suppose the Jet Ski is moving at a speed of12 m/s relative to the water.
(a) At what angle must you point the Jet Ski if your velocityrelative to the ground is to be perpendicular to the shore of theriver?
(b) If you increase the speed of the Jet Ski relative to the water,does the angle in part (a) increase, decrease, or stay the same?Explain.
(Note: Angles are measured relative to the x axis, which pointsacross the river.)
Ans: (a) 13◦ ; (b) decrease
1Walker, “Physics”, ch 3, problem 56.
Kinematic Equations in 2 Dimensions
What if velocity is not constant?
If there is acceleration, we can still break down our motionalquantities (displacement, velocity, acceleration) into components.
We can solve each component independently.
Kinematic Equations in 2 Dimensions
#»v f = #»v i +#»a t
82 Chapter 4 Motion in Two Dimensions
Because the acceleration aS of the particle is assumed constant in this discussion, its components ax and ay also are constants. Therefore, we can model the particle as a particle under constant acceleration independently in each of the two directions and apply the equations of kinematics separately to the x and y components of the velocity vector. Substituting, from Equation 2.13, vxf 5 vxi 1 axt and vyf 5 vyi 1 ayt into Equation 4.7 to determine the final velocity at any time t, we obtain
vSf 5 1vxi 1 axt 2 i 1 1vyi 1 ayt 2 j 5 1vxi i 1 vyi j 2 1 1ax i 1 ay j 2 t vSf 5 vSi 1 aSt (4.8)
This result states that the velocity of a particle at some time t equals the vector sum of its initial velocity vSi at time t 5 0 and the additional velocity aSt acquired at time t as a result of constant acceleration. Equation 4.8 is the vector version of Equation 2.13. Similarly, from Equation 2.16 we know that the x and y coordinates of a particle under constant acceleration are
xf 5 xi 1 vxit 1 12axt 2 yf 5 yi 1 vyit 1 1
2ayt 2
Substituting these expressions into Equation 4.6 (and labeling the final position vector rSf ) gives
rSf 5 1xi 1 vxit 1 12axt 2 2 i 1 1yi 1 vyit 1 1
2ayt 2 2 j 5 1xi i 1 yi j 2 1 1vxi i 1 vyi j 2 t 1 1
2 1ax i 1 ay j 2 t 2
rSf 5 rSi 1 vSit 1 12 aSt 2 (4.9)
which is the vector version of Equation 2.16. Equation 4.9 tells us that the position vector rSf of a particle is the vector sum of the original position rSi, a displacement vSi t arising from the initial velocity of the particle, and a displacement 1
2 aSt 2 result-ing from the constant acceleration of the particle. We can consider Equations 4.8 and 4.9 to be the mathematical representation of a two-dimensional version of the particle under constant acceleration model. Graphical representations of Equations 4.8 and 4.9 are shown in Figure 4.5. The components of the position and velocity vectors are also illustrated in the figure. Notice from Figure 4.5a that vSf is generally not along the direction of either vSi or aS because the relationship between these quantities is a vector expression. For the same reason, from Figure 4.5b we see that rSf is generally not along the direction of rSi, vSi, or aS. Finally, notice that vSf and rSf are generally not in the same direction.
Velocity vector as Wa function of time for a particle under constant
acceleration in two dimensions
Position vector as a function of time for a particle under constant
acceleration in two dimensions
Figure 4.5 Vector representa-tions and components of (a) the velocity and (b) the position of a particle under constant accelera-tion in two dimensions.
y
x
ayt
vyf
vyi
t
vxi axt
vxf
y
x
yf
yi
it
vxit
xf
ayt21
2
vyit
t212
axt21
2xi
viS vi
S
vfS
riS
rfSaS aS
a b
Equating x-components (i-components):
vx = vx ,i + ax t
Equating y -components (j-components):
vy = vy ,i + ay t
Kinematic Equations in 2 Dimensions
#»v f = #»v i +#»a t
#»v f = (vx ,i i+ vy ,i j) + (ax i+ ay j)t
vx i+ vy j = (vx ,i + ax t )i+ (vy ,i + ay t )j
82 Chapter 4 Motion in Two Dimensions
Because the acceleration aS of the particle is assumed constant in this discussion, its components ax and ay also are constants. Therefore, we can model the particle as a particle under constant acceleration independently in each of the two directions and apply the equations of kinematics separately to the x and y components of the velocity vector. Substituting, from Equation 2.13, vxf 5 vxi 1 axt and vyf 5 vyi 1 ayt into Equation 4.7 to determine the final velocity at any time t, we obtain
vSf 5 1vxi 1 axt 2 i 1 1vyi 1 ayt 2 j 5 1vxi i 1 vyi j 2 1 1ax i 1 ay j 2 t vSf 5 vSi 1 aSt (4.8)
This result states that the velocity of a particle at some time t equals the vector sum of its initial velocity vSi at time t 5 0 and the additional velocity aSt acquired at time t as a result of constant acceleration. Equation 4.8 is the vector version of Equation 2.13. Similarly, from Equation 2.16 we know that the x and y coordinates of a particle under constant acceleration are
xf 5 xi 1 vxit 1 12axt 2 yf 5 yi 1 vyit 1 1
2ayt 2
Substituting these expressions into Equation 4.6 (and labeling the final position vector rSf ) gives
rSf 5 1xi 1 vxit 1 12axt 2 2 i 1 1yi 1 vyit 1 1
2ayt 2 2 j 5 1xi i 1 yi j 2 1 1vxi i 1 vyi j 2 t 1 1
2 1ax i 1 ay j 2 t 2
rSf 5 rSi 1 vSit 1 12 aSt 2 (4.9)
which is the vector version of Equation 2.16. Equation 4.9 tells us that the position vector rSf of a particle is the vector sum of the original position rSi, a displacement vSi t arising from the initial velocity of the particle, and a displacement 1
2 aSt 2 result-ing from the constant acceleration of the particle. We can consider Equations 4.8 and 4.9 to be the mathematical representation of a two-dimensional version of the particle under constant acceleration model. Graphical representations of Equations 4.8 and 4.9 are shown in Figure 4.5. The components of the position and velocity vectors are also illustrated in the figure. Notice from Figure 4.5a that vSf is generally not along the direction of either vSi or aS because the relationship between these quantities is a vector expression. For the same reason, from Figure 4.5b we see that rSf is generally not along the direction of rSi, vSi, or aS. Finally, notice that vSf and rSf are generally not in the same direction.
Velocity vector as Wa function of time for a particle under constant
acceleration in two dimensions
Position vector as a function of time for a particle under constant
acceleration in two dimensions
Figure 4.5 Vector representa-tions and components of (a) the velocity and (b) the position of a particle under constant accelera-tion in two dimensions.
y
x
ayt
vyf
vyi
t
vxi axt
vxf
y
x
yf
yi
it
vxit
xf
ayt21
2
vyit
t212
axt21
2xi
viS vi
S
vfS
riS
rfSaS aS
a bEquating x-components (i-components):
vx = vx ,i + ax t
Equating y -components (j-components):
vy = vy ,i + ay t
Acceleration due to gravity and kinematics
Let’s think about the components of the motion separately.
5 Projectile Motion
A ball’s velocity can be resolved into horizontal and vertical components.
5.3 Components of Vectors
Vertical (y -direction):
constant acceleration, #»g
∆y = vi ,y t −1
2gt2
Horizontal (x-direction):
no acceleration, const. velocity
∆x = vi ,x t
1Drawing by Hewitt, via Pearson.
Acceleration due to gravity and kinematics
A constant acceleration gives motion in the shape of a parabola.
Projectiles
projectile
Any object that is thrown. We will use this word specifically torefer to thrown objects that experience a vertical acceleration g .
For projectile motion, we assume air resistance is negligible.
Projectile Velocity 4.3 Projectile Motion 85
Figure 4.7 The parabolic path of a projectile that leaves the ori-gin with a velocity vSi . The velocity vector vS changes with time in both magnitude and direction. This change is the result of accel-eration aS 5 gS in the negative y direction.
f
x
(x,y)it
O
y
t212 gS
rS
vS
Figure 4.8 The position vector rSf of a projectile launched from the origin whose initial velocity at the origin is vSi . The vector vSit would be the displacement of the projectile if gravity were absent, and the vector 12 gSt 2 is its vertical displacement from a straight-line path due to its downward gravita-tional acceleration.
R
x
y
h
i
vy ! 0
i
O
u
vS!
"
!
Figure 4.9 A projectile launched over a flat surface from the origin at ti 5 0 with an initial velocity vSi . The maximum height of the projectile is h, and the horizontal range is R. At !, the peak of the trajectory, the particle has coordi-nates (R/2, h).
In Section 4.2, we stated that two-dimensional motion with constant accelera-tion can be analyzed as a combination of two independent motions in the x and y directions, with accelerations ax and ay. Projectile motion can also be handled in this way, with acceleration ax 5 0 in the x direction and a constant acceleration ay 5 2g in the y direction. Therefore, when solving projectile motion problems, use two analysis models: (1) the particle under constant velocity in the horizontal direction (Eq. 2.7):
xf 5 xi 1 vxit
and (2) the particle under constant acceleration in the vertical direction (Eqs. 2.13–2.17 with x changed to y and ay = –g):
vyf 5 vyi 2 gt
vy,avg 5vyi 1 vyf
2
yf 5 yi 1 12 1vyi 1 vyf 2 t
yf 5 yi 1 vyit 2 12gt 2
vyf2 5 vyi
2 2 2g 1 yf 2 yi 2
The horizontal and vertical components of a projectile’s motion are completely independent of each other and can be handled separately, with time t as the com-mon variable for both components.
Q uick Quiz 4.2 (i) As a projectile thrown upward moves in its parabolic path (such as in Fig. 4.8), at what point along its path are the velocity and accelera-tion vectors for the projectile perpendicular to each other? (a) nowhere (b) the highest point (c) the launch point (ii) From the same choices, at what point are the velocity and acceleration vectors for the projectile parallel to each other?
Horizontal Range and Maximum Height of a ProjectileBefore embarking on some examples, let us consider a special case of projectile motion that occurs often. Assume a projectile is launched from the origin at ti 5 0 with a positive vyi component as shown in Figure 4.9 and returns to the same hori-zontal level. This situation is common in sports, where baseballs, footballs, and golf balls often land at the same level from which they were launched. Two points in this motion are especially interesting to analyze: the peak point !, which has Cartesian coordinates (R/2, h), and the point ", which has coordinates (R , 0). The distance R is called the horizontal range of the projectile, and the distance h is its maximum height. Let us find h and R mathematically in terms of vi, ui, and g.
xvxi
vxi
vy
vy ! 0
vxi
vy
ivy
vy
i
vxi
y
i
i
u
uu
u
The y component of velocity is zero at the peak of the path.
The x component of velocity remains constant because there is no acceleration in the x direction.
vS
The projectile is launched with initial velocity vi.
S
vSvS
vS
vS
gS
!
"
# $
%
"#
$
%
1Figure from Serway & Jewett, 9th ed.
Projectile Velocity 4.3 Projectile Motion 85
Figure 4.7 The parabolic path of a projectile that leaves the ori-gin with a velocity vSi . The velocity vector vS changes with time in both magnitude and direction. This change is the result of accel-eration aS 5 gS in the negative y direction.
f
x
(x,y)it
O
y
t212 gS
rS
vS
Figure 4.8 The position vector rSf of a projectile launched from the origin whose initial velocity at the origin is vSi . The vector vSit would be the displacement of the projectile if gravity were absent, and the vector 12 gSt 2 is its vertical displacement from a straight-line path due to its downward gravita-tional acceleration.
R
x
y
h
i
vy ! 0
i
O
u
vS!
"
!
Figure 4.9 A projectile launched over a flat surface from the origin at ti 5 0 with an initial velocity vSi . The maximum height of the projectile is h, and the horizontal range is R. At !, the peak of the trajectory, the particle has coordi-nates (R/2, h).
In Section 4.2, we stated that two-dimensional motion with constant accelera-tion can be analyzed as a combination of two independent motions in the x and y directions, with accelerations ax and ay. Projectile motion can also be handled in this way, with acceleration ax 5 0 in the x direction and a constant acceleration ay 5 2g in the y direction. Therefore, when solving projectile motion problems, use two analysis models: (1) the particle under constant velocity in the horizontal direction (Eq. 2.7):
xf 5 xi 1 vxit
and (2) the particle under constant acceleration in the vertical direction (Eqs. 2.13–2.17 with x changed to y and ay = –g):
vyf 5 vyi 2 gt
vy,avg 5vyi 1 vyf
2
yf 5 yi 1 12 1vyi 1 vyf 2 t
yf 5 yi 1 vyit 2 12gt 2
vyf2 5 vyi
2 2 2g 1 yf 2 yi 2
The horizontal and vertical components of a projectile’s motion are completely independent of each other and can be handled separately, with time t as the com-mon variable for both components.
Q uick Quiz 4.2 (i) As a projectile thrown upward moves in its parabolic path (such as in Fig. 4.8), at what point along its path are the velocity and accelera-tion vectors for the projectile perpendicular to each other? (a) nowhere (b) the highest point (c) the launch point (ii) From the same choices, at what point are the velocity and acceleration vectors for the projectile parallel to each other?
Horizontal Range and Maximum Height of a ProjectileBefore embarking on some examples, let us consider a special case of projectile motion that occurs often. Assume a projectile is launched from the origin at ti 5 0 with a positive vyi component as shown in Figure 4.9 and returns to the same hori-zontal level. This situation is common in sports, where baseballs, footballs, and golf balls often land at the same level from which they were launched. Two points in this motion are especially interesting to analyze: the peak point !, which has Cartesian coordinates (R/2, h), and the point ", which has coordinates (R , 0). The distance R is called the horizontal range of the projectile, and the distance h is its maximum height. Let us find h and R mathematically in terms of vi, ui, and g.
xvxi
vxi
vy
vy ! 0
vxi
vy
ivy
vy
i
vxi
y
i
i
u
uu
u
The y component of velocity is zero at the peak of the path.
The x component of velocity remains constant because there is no acceleration in the x direction.
vS
The projectile is launched with initial velocity vi.
S
vSvS
vS
vS
gS
!
"
# $
%
"#
$
%
1Figure from Serway & Jewett, 9th ed.
← But the yaccelerationis not zero!
Principle Equations of Projectile Motion
(Notice, these are just special cases of the kinematics equations!)
∆x = v0x t vx = v0x v2x = v20x
∆y = v0y t −1
2gt2 vy = v0y − gt v2y = v20y − 2g(∆y)
Upward is the positive direction for these.
Principle Equations of Projectile Motion
(Notice, these are just special cases of the kinematics equations!)
∆x = v0x t vx = v0x v2x = v20x
∆y = v0y t −1
2gt2 vy = v0y − gt v2y = v20y − 2g(∆y)
Upward is the positive direction for these.
Principle Equations of Projectile Motion
If the projectile is launched straight out horizontally, its motion inthe y -direction is the same as for a falling object.
v0y = 0, v0x 6= 0
The equations become:
∆x = v0x t vx = v0x v2x = v20x
∆y = −1
2gt2 vy = −gt v2y = −2g(∆y)
Principle Equations of Projectile Motion
If the projectile is launched straight out horizontally, its motion inthe y -direction is the same as for a falling object.
v0y = 0, v0x 6= 0
The equations become:
∆x = v0x t vx = v0x v2x = v20x
∆y = −1
2gt2 vy = −gt v2y = −2g(∆y)
Horizontal launch example
A ball is thrown horizontally from a cliff at a speed of 10 m/s.What will its speed be (roughly) after 1s?
answer: 14 m/s
1Hewitt “Conceptual Physics”, page 192.
Horizontal launch example
A ball is thrown horizontally from a cliff at a speed of 10 m/s.What will its speed be (roughly) after 1s?
answer: 14 m/s
1Hewitt “Conceptual Physics”, page 192.
Concept Question
86 CHAPTER 4 TWO-DIMENSIONAL KINEMATICS
continued from previous page
SolutionPart (a)
1. Substitute into the x and y equations of motion:
Part (b)
2. Substitute into the x and y equations of motion:Note that the ball is only about an inch above the ground at this time:
Part (c)
3. First, calculate the x and y components of the velocityat using and
4. Use these components to determine v, and
InsightNote that the x position of the ball does not depend on the acceleration of gravity, g, and that its y position does not depend onthe initial horizontal speed of the ball, For example, if the person is running when he drops the ball, the ball is moving fasterin the horizontal direction, and it keeps up with the person when it is dropped. Its vertical motion doesn’t change at all, how-ever; it drops to the ground in exactly the same time and bounces back to the same height as before.
Practice ProblemHow long does it take for the ball to land? [Answer: Referring to the results of part (b), it is clear that the time of landing isslightly greater than 0.500 s. Setting gives a precise answer; ]
Some related homework problems: Problem 12, Problem 13, Problem 17
t = 22h>g = 0.505 s.y = 0
v0.
u = tan-1
vy
vx= tan-1
1-4.91 m/s21.30 m/s
= -75.2°
= 211.30 m/s22 + 1-4.91 m/s22 = 5.08 m/s
v = 2vx
2 + vy
2
v! = 11.30 m/s2xN + 1-4.91 m/s2yNu:v
!,
vy = -gt = -19.81 m/s2210.500 s2 = -4.91 m/svy = -gt:vx = v0t = 0.500 s vx = v0 = 1.30 m/s
= 1.25 m - 1219.81 m/s2210.500 s22 = 0.0238 m
y = h - 12 gt2
x = v0t = 11.30 m/s210.500 s2 = 0.650 mt = 0.500 s
= 1.25 m - 1219.81 m/s2210.250 s22 = 0.943 m
y = h - 12 gt2
x = v0t = 11.30 m/s210.250 s2 = 0.325 mt = 0.250 s
CONCEPTUAL CHECKPOINT 4–1 Compare Splashdown SpeedsTwo youngsters dive off an overhang into a lake. Diver 1 drops straight down, diver 2 runs off the cliffwith an initial horizontal speed v0. Is the splashdown speed of diver 2 (a) greater than, (b) less than,or (c) equal to the splashdown speed of diver 1?
vy vy
vx = v0
v0
v
1 2
WALKMC04_0131536311.QXD 11/16/05 17:57 Page 86
Two youngsters dive off an overhang into a lake. Diver 1 dropsstraight down, diver 2 runs off the cliff with an initial horizontalspeed v0. Is the splashdown speed of diver 2
(A) greater than,
(B) less than, or
(C) equal to
the splashdown speed of diver 1?
1Walker, “Physics”, page 90.
Concept Question
86 CHAPTER 4 TWO-DIMENSIONAL KINEMATICS
continued from previous page
SolutionPart (a)
1. Substitute into the x and y equations of motion:
Part (b)
2. Substitute into the x and y equations of motion:Note that the ball is only about an inch above the ground at this time:
Part (c)
3. First, calculate the x and y components of the velocityat using and
4. Use these components to determine v, and
InsightNote that the x position of the ball does not depend on the acceleration of gravity, g, and that its y position does not depend onthe initial horizontal speed of the ball, For example, if the person is running when he drops the ball, the ball is moving fasterin the horizontal direction, and it keeps up with the person when it is dropped. Its vertical motion doesn’t change at all, how-ever; it drops to the ground in exactly the same time and bounces back to the same height as before.
Practice ProblemHow long does it take for the ball to land? [Answer: Referring to the results of part (b), it is clear that the time of landing isslightly greater than 0.500 s. Setting gives a precise answer; ]
Some related homework problems: Problem 12, Problem 13, Problem 17
t = 22h>g = 0.505 s.y = 0
v0.
u = tan-1
vy
vx= tan-1
1-4.91 m/s21.30 m/s
= -75.2°
= 211.30 m/s22 + 1-4.91 m/s22 = 5.08 m/s
v = 2vx
2 + vy
2
v! = 11.30 m/s2xN + 1-4.91 m/s2yNu:v
!,
vy = -gt = -19.81 m/s2210.500 s2 = -4.91 m/svy = -gt:vx = v0t = 0.500 s vx = v0 = 1.30 m/s
= 1.25 m - 1219.81 m/s2210.500 s22 = 0.0238 m
y = h - 12 gt2
x = v0t = 11.30 m/s210.500 s2 = 0.650 mt = 0.500 s
= 1.25 m - 1219.81 m/s2210.250 s22 = 0.943 m
y = h - 12 gt2
x = v0t = 11.30 m/s210.250 s2 = 0.325 mt = 0.250 s
CONCEPTUAL CHECKPOINT 4–1 Compare Splashdown SpeedsTwo youngsters dive off an overhang into a lake. Diver 1 drops straight down, diver 2 runs off the cliffwith an initial horizontal speed v0. Is the splashdown speed of diver 2 (a) greater than, (b) less than,or (c) equal to the splashdown speed of diver 1?
vy vy
vx = v0
v0
v
1 2
WALKMC04_0131536311.QXD 11/16/05 17:57 Page 86
Two youngsters dive off an overhang into a lake. Diver 1 dropsstraight down, diver 2 runs off the cliff with an initial horizontalspeed v0. Is the splashdown speed of diver 2
(A) greater than,←(B) less than, or
(C) equal to
the splashdown speed of diver 1?
1Walker, “Physics”, page 90.
Summary• one more relative motion problem
• motion with constant acceleration
• projectile motion
• projectiles launched horizontally
Quiz Thursday
Homework
• relative motion worksheet (answer on scantron and hand in,due Thurs)
Walker Physics:
• Ch 4, onward from page 100. Conceptual Questions: 1, 5;Problems: 3, 5, 9, 11, 13, 15, 17, 25, 841
1Ans: (a) v0 = W√
g2h, (b) θ = − tan−1
(2hW
)(minus sign indicates below
the horizontal axis).